A review of PCM based hybrid battery thermal management systems for the prismatic lithium-ion batteries of the electric vehicle

Anchal Awasthi , Neelkanth Nirmalkar , Anurag Kumar Tiwari
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Abstract

The commercialization of Electric Vehicles (EVs) has increased rapidly in the past few decades. The battery thermal management system (BTMS) has emerged as an essential part of the EV to maintain the lithium-ion battery's (LIB) Temperature within an effective range. Various types of BTMS have been studied; however, hybrid BTMS utilizing PCM has shown superior performance. In this article, we provide a review of recent publications on the hybrid battery management system (BTMS) for battery modules that include prismatic LIBs. This paper presents a comprehensive review of the design, operation, and performance of PCM-based hybrid BTMS designs for prismatic LIBs. For the hybrid BTMS for prismatic LIBs, the article has been divided into two primary design types: hybrid-liquid cooled (LC)-BTMS and hybrid-air cooled (AC)-BTMS. Discussions on the various hybrid BTMS designs have been provided. Most of the studies reported on hybrid BTMS designs utilized the numerical simulation analysis; therefore, details about the numerical simulation methodology and battery heat generation models have also been presented. Additionally, a brief contrast between the hybrid AC-BTMS and LC-BTMS systems has been provided. After analyzing and discussing the literature, conclusions, gaps in knowledge, and ideas for further studies have been identified.
基于PCM的混合动力电池热管理系统的研究进展
在过去的几十年里,电动汽车(ev)的商业化发展迅速。电池热管理系统(BTMS)已成为电动汽车将锂离子电池(LIB)温度保持在有效范围内的重要组成部分。对各种类型的BTMS进行了研究;然而,利用PCM的混合BTMS表现出优越的性能。在这篇文章中,我们回顾了最近发表的关于电池模块的混合电池管理系统(BTMS),包括棱柱形lib。本文全面回顾了基于pcm的混合BTMS的设计、操作和性能。对于柱形lib的混合BTMS,本文将其分为两种主要设计类型:混合液冷(LC)-BTMS和混合风冷(AC)-BTMS。讨论了各种混合BTMS的设计。关于混合式BTMS设计的研究大多采用数值模拟分析;因此,本文还详细介绍了数值模拟方法和电池产热模型。此外,还对混合AC-BTMS和LC-BTMS系统进行了简要对比。在分析和讨论文献,结论,知识的差距和进一步研究的想法已经确定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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